Nature Communications

Finite-temperature toroidal moment amenable to direct observation in an Fe10Dy10 molecular ring

2026-07-24

Single-molecule toroics host closed magnetic vortices carrying toroidal moments τ , whose electric-dipole symmetry enables magnetoelectric spin control. Yet opposite toroidal chiralities are degenerate in conventional magnetic fields, making direct detection of τ challenging. Current approaches probe toroidal dynamics only indirectly through weak residual magnetism, while finite-temperature toroidal polarisation and realistic preparation/readout conditions remain unestablished. Here we show that the Fe 10 Dy 10 molecule hosts a 62-billion-dimensional low-energy manifold pervaded by toroidal character, rendered tractable by an ab initio-informed transfer-matrix framework that reproduces experimental data. The model reveals a large toroidal response robust to thermal fluctuations, quantified by a finite-temperature toroidal susceptibility ξ . We then propose a preparation-and-readout protocol in which a train of temporally asymmetric near-infrared pulses accumulates toroidal polarisation, converted through magnetoelectric response into a measurable electric-field-induced magnetic signal. These results establish Fe 10 Dy 10 as a molecular system where τ can be prepared, accumulated and read out under realistic conditions.

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DOI https://doi.org/10.1038/s41467-026-75612-6